BACKGROUND OF THE INVENTION
[0001] The present invention generally relates to superconducting quantum interference magnetometers
that utilize digital superconducting quantum interference devices for the measurement
of feeble magnetic fields, and more particularly to a superconducting quantum interference
magnetometer equipped with a plurality of measuring channels.
[0002] Superconducting quantum interference magnetometers that utilize the superconducting
interference devices abbreviated hereinafter as SQUIDs are used as the essential device
for measuring the extremely feeble magnetic fields produced by the biologic bodies
and organs such as brain or heart. Particularly, there is a keen demand for a magnetometer
equipped with a plurality of measuring channels for measuring the distribution of
magnetic field in a short time.
[0003] In such multi-channel SQUID magnetometers, a number of digital SQUID sensors are
arranged parallel with each other, wherein each SQUID sensor produces a series of
output voltage pulses in response to the unknown magnetic flux that interlinks with
a superconducting detection loop of the SQUID sensor. In combination with each SQUID
sensor, there is provided a corresponding feedback circuit that produces a counteracting
feedback magnetic flux in the detection loop such that the unknown magnetic flux is
counteracted by the feedback magnetic flux. The magnitude of this feedback magnetic
flux is increased stepwise in response to each output voltage pulse of the SQUID sensor
until the unknown magnetic flux is totally canceled out. Upon the cancellation of
the magnetic flux, the induction current induced in the superconducting detection
loop disappears and the SQUID sensor stops producing the output voltage pulses. The
measurement of the magnetic flux is achieved by counting the number of output voltage
pulses thus produced by the SQUID sensor. On the other hand, the direction of the
magnetic flux is determined by detecting the polarity of the voltage pulse. Such a
SQUID magnetometer using the digital SQUID sensor provides various preferable features
such as increased S/N ratio, ease of processing the output data by digital processing
systems, and the like. The inventor of the present invention has previously proposed
such a digital SQUID magnetometer wherein the SQUID sensor and the feedback circuit
are assembled into a single chip, in the United States Patent 4,947,118. Such a so-called
single chip SQUID magnetometer incorporates both the SQUID sensor and the feedback
circuit in the liquid helium bath and thus eliminates the feedback conductor extending
between the SQUID sensor in the liquid helium bath and the feedback circuit provided
conventionally in the room temperature environment. Thereby, the problem of penetration
of heat from the room temperature environment to the liquid helium bath through the
feedback conductor is eliminated and the consumption or evaporation of the liquid
helium used for maintaining the SQUID device at the superconducting state is significantly
reduced.
[0004] In constructing a multi-channel magnetometer using such a digital SQUID sensor, there
is an obvious approach shown in FIG.1, wherein a number of single chip SQUID magnetometer
elements, each comprising a SQUID sensor such as the sensor 1a - 1n, a corresponding
feedback circuit such as the circuit 2a - 2n, and a feedback path such as the path
3a - 3n, are provided parallel with each other and connected to a processing and display
unit 5 for digital processing of the output pulses and display of the result of measurement.
Thus, the processing and display unit 5 receives the output voltage pulses of the
SQUID magnetometers through parallel output conductors 4a - 4n when there are n such
magnetometer channels.
[0005] In the construction of FIG.1, it should be noted that the parallel conductors 4a
- 4n extend from the processing unit 5 operated at the room temperature to the SQUID
magnetometers operated at the liquid helium temperature. In other words, the conductors
4a - 4n extend across a wall of a liquid helium container in which the SQUID magnetometers
are contained. Thereby, there arises a problem of heat penetrating into the liquid
helium through these conductors. It should be noted that the number of conductors
4a - 4n corresponds to the number of the channels. With increasing number of channels,
this effect of penetration of heat and the associated problem of excessive consumption
of liquid helium becomes a serious problem in the actual use of the SQUID magnetometer.
[0006] On the other hand, there is another known construction of multi-channel SQUID magnetometer
as shown in FIG.2, wherein the outputs of the SQUID sensors 1a - 1n are sent to a
multiplexer 11 provided in the room temperature system for a time-divisional multiplexing.
The output of the multiplexer 11 is supplied to a feedback circuit 12 also operated
in the room temperature system, and the feedback signal produced by the feedback circuit
12 is once stored in a memory 13 for each channel under control of a controller 15.
Further, the feedback signal is fed back to the SQUID sensors 1a - 1n from the memory
13 via feedback conductors 14a - 14n. The memory 13 further supplies the feedback
signal representing the detected polarity and magnitude of the magnetic flux to a
processing unit 17 for processing and displaying the result of measurement.
[0007] In this apparatus, too, the problem of penetration of the heat is not eliminated.
Particularly, as there are n additional conductor strips connecting the SQUID sensors
and the multiplexer 11, the problem of evaporation of liquid helium is deteriorated
rather than improved. Even if one designed the multiplexer 11 using a Josephson device
and thus succeeded in providing the multiplexer 11 in the liquid helium bath together
with the SQUID sensors 1a-1n, the problem of penetration of heat through the feedback
conductors 14a-14n remains unsolved.
[0008] A typical arrangement showing multiple external leads is shown for instance in J.
Phys. E Vol. 17, no. 6, June 1984, pp. 504-512 (Lekkala et al.). The preamble of claim
1 is based on this disclosure, which also shows the corresponding features of claim
12.
[0009] It is a general object of the present invention to provide a novel and useful multi-channel
SQUID magnetometer wherein the foregoing problems are eliminated.
[0010] Another and more specific object of the present invention is to provide a multi-channel
SQUID magnetometer wherein the penetration of heat into a cooling vessels holding
the SQUID magnetometers of each channel in the superconducting states is minimized,
and in particular wherein the number of conductor strips that connect SQUID sensors
located in a low temperature vessel to external circuits outside the low temperature
vessel is reduced.
[0011] According to one aspect of the present invention there is provided a multi-channel
superconducting quantum interference magnetometer for measuring an unknown magnetic
field, comprising: a cooling vessel for holding a cooling medium; a plurality of superconducting
quantum interference magnetometer elements, one for each channel, each magnetometer
element including: a SQUID sensor including a superconducting detection loop formed
from a closed loop of a superconducting body, for interlinking with the unknown magnetic
field; and a superconducting quantum interference device coupled magnetically to the
superconducting detection loop for producing output voltage pulses in response to
the interlinking of the superconducting detection loop with the unknown magnetic field,
the SQUID sensors being accommodated in the cooling vessel so as to be cooled by the
cooling medium; feedback means supplied with the output voltage pulses from the SQUID
for producing a magnetic flux that counteracts the unknown magnetic flux in the detection
loop due to the unknown magnetic field in response to each output voltage pulse; and
gate means between each SQUID and the feedback means for controlling the supplying
of the output voltage pulses from the SQUID to the feedback means, the gate means
being supplied with a control signal and selectively passing the output voltage pulses
in response to a logic level of the control signal; the multi-channel magnetometer
further comprising selection means to which selection signals are applied for specifying
a desired channel and which supplies the control signal selectively to the gate means
of the superconducting quantum interference magnetometer element of the specified
channel; and connection lead means connected to the SQUID of each channel via the
corresponding gate means for leading the output voltage pulse to a processing circuit;
and being characterised in that the feedback means, the gate means and the selection
means are all accommodated in the cooling vessel.
[0012] The processing circuit may be provided outside the cooling vessel, but in some embodiments
it too can advantageously be a low-temperature device.
[0013] In an alternative aspect of the invention, instead of the detection loop SQUID generating
the pulses directly a DC version is used, the current from which drives a second,
AC, SQUID which in turn generates the pulses in response to the AC bias pulses and
in response to the output current of the first SQUID.
[0014] The present invention envisages selection means which select the SQUID magnetometers
consecutively, and the output pulse of the digital SQUID sensor in the selected SQUID
magnetometer is output to the external processing circuit consecutively or time-sequentially.
As a result only one connection lead is necessary in the connection lead means for
outputting the output voltage pulse to the outside of the cooling vessel, so that
penetration of heat into the cooling vessel through the connection lead is minimized.
In the SQUID magnetometer used in the present multi-channel magnetometer, it should
be noted that both the digital SQUID sensor and the feedback means are accommodated
in the cooling vessel. Thus, the problem of penetration of heat through the feedback
conductor does not occur.
[0015] Embodiments of the present invention provide a desirable feature in that the penetration
of heat through control leads that are used to supply the selection signal to the
selection means is minimized, as the possible number of selections is given by the
combination of the selection signals, which is much larger than the number of control
leads necessary for supplying the selection signals. Thereby, the number of control
leads to the selection means can be reduced with respect to the predetermined number
of channels and the foregoing preferable feature of minimization of the penetration
of heat is achieved.
[0016] A further important feature is that the gate means is provided between the SQUID
sensor and the feedback means. The supply of the output voltage pulses from the SQUID
sensor to the feedback means can thus be interrupted when the SQUID magnetometer is
not selected and the operation of the SQUID magnetometer is stopped. In other words,
the SQUID magnetometer of each channel holds its state when not selected and resumes
operation from the state thus held when it is selected again. Thereby, one obtains
the correct number of output pulses from the SQUID sensor in correspondence to the
magnitude of the unknown magnetic flux, even when the SQUID magnetometer is switched
during the measurement.
[0017] Other objections and further features of the present invention will become apparent
from the following detailed description of certain embodiments thereof, when read
in conjunction with the attached drawings, in which:
Fig. 1 is a block diagram showing a conventional SQUID multi-channel magnetometer
using a number of SQUID sensors and feedback circuits provided in parallel;
FIG.2 is a block diagram showing the construction of another conventional multi-channel
SQUID magnetometer using a multiplexer;
FIG.3 is a block diagram showing the construction of a multi-channel SQUID magnetometer
according to a first embodiment of the present invention;
FIG.4 is a circuit diagram showing the essential part of the multi-channel SQUID magnetometer
of FIG.3;
FIGS.5A - 5D are diagrams showing the logic operation performed in the multi-channel
SQUID magnetometer for selecting a particular channel;
FIG.6 is a circuit diagram showing the construction of a selection circuit used in
the multi-channel SQUID magnetometer of FIG.3;
FIG.7 is a circuit diagram showing another example of the construction of the selection
circuit;
FIGS.8A - 8C are circuit diagrams showing the construction of Josephson logic elements
used in the selection circuit of FIG.6;
FIG.9 is a circuit diagram showing a second embodiment of the present invention;
FIG.10 is a circuit diagram showing a third embodiment of the present invention; and
FIG.11 is a block diagram showing a fourth embodiment of the present invention.
DETAILED DESCRIPTION
[0018] FIG.3 shows the block diagram of the first embodiment apparatus of the present invention.
[0019] Referring to FIG.3, the multi-channel SQUID magnetometer of the present invention
comprises a number of digital SQUID sensors 21a - 21n and corresponding feedback circuits
22a - 22n, wherein each digital SQUID sensor is connected to a corresponding feedback
circuit by a corresponding feedback path such as the feedback paths 24a - 24n. Thereby,
the SQUID sensor such as the SQUID 21a detects an unknown magnetic field and produces
an output voltage pulse similar to the output pulse of the conventional digital SQUID
of FIG.1. This output pulse of the SQUID 21a is supplied to the feedback circuit 22a,
the feedback circuit producing a feedback current that changes the magnitude in response
to each output pulse of the SQUID sensor 21a. This feedback current is fed back to
the SQUID sensor 21a via a feedback path 24a for producing a magnetic field that counteracts
against the incident unknown magnetic flux. The SQUID sensor 21a continues producing
the output pulses until the unknown magnetic flux is entirely canceled by the feedback
magnetic flux that is induced by the feedback current. Thereby, the number of the
output pulses thus produced by the SQUID sensor 21a represents the intensity of the
unknown magnetic flux and the polarity of the output pulses indicates the direction
of the magnetic flux. The operation so far described is known and identical to the
case of the SQUID magnetometer of FIG.1.
[0020] In the multi-channel SQUID magnetometer of FIG.3, the SQUID sensors 21a - 21n and
feedback circuits 22a - 22n cooperating with the corresponding SQUID sensors are arranged
in parallel in correspondence to the plurality of channels, wherein the output of
each SQUID magnetometer element is collected at a node 27a via respective output lines
25a - 25n. In the example of FIG.3, the output lines 25a - 25n are fanned in at the
node 27a via respective resistors 26a - 26n.
[0021] In the construction of FIG.3, there are provided a number of control gates 23a -
23n between the SQUID sensors 21a - 21n and the feedback circuits 22a - 22n. Each
of the control gates 23a - 23n is supplied with a control signal to be described later
and passes the output pulses of the SQUID sensor selectively to the feedback circuit
in response to the logic state of the control signal. For example, the control gate
23a is provided between the SQUID sensor 21a and the feedback circuit 22a and selectively
allows passage of the output pulses of the SQUID sensor 21a to the feedback circuit
22a in response to the logic state of a control signal CONTROL1. Similarly, an n-th
control gate 23n is provided between the n-th SQUID sensor 21n and the corresponding
feedback circuit 23n and controls the passage of the output voltage pulses of the
SQUID sensor 21n in response to the logic level of the control signal CONTROLn. It
should be noted that all the SQUID sensors 21a - 21n, the feedback circuits 22a -
22n and the control gates 23a - 23n, including the feedback paths 24a - 24n and the
output lines 25a - 25n, are provided inside a low temperature vessel 100 filled with
liquid helium for maintaining the SQUID sensors and the feedback circuits in the superconducting
state.
[0022] Further, there is provided a selection circuit 30 also in the low temperature vessel
100 for producing the control signals CONTROL1 - CONTROLn. Thus, the selection circuit
30 is connected to each of the control gates 23a - 23n by n control lines 29a - 29n.
This selection circuit in turn produces the control signals CONTROL1 - CONTROLn in
response to selection signals that are given thereto from a processing and display
unit 28 provided outside of the low temperature vessel 100, via selection control
lines 51a - 51m. The processing and display unit 28 is supplied with the output of
the SQUID sensors 21a - 21n via the node 27a and the line 27 connected thereto and
converts the number of output pulses into the intensity of the magnetic field. The
unit 28 further identifies the direction of the unknown magnetic flux based upon the
polarity of the output voltage pulses and displays the direction and intensity of
the unknown magnetic flux on a display screen or other suitable display device. Further,
the processing and display unit 28 produces the foregoing selection signals and outputs
the same on the selection control lines 51a - 51m.
[0023] In operation, the processing and display unit 28 selects one of the channels by producing
the selection signals. In response to the selection signals, one of the control gates
such as the gate 23a is activated while other control gates are all set in the inactivated
state. Thereby, only the output voltage pulses from the SQUID sensor 21a are supplied
to the feedback circuit 22a and the feedback circuit 22a changes the magnitude of
the counteracting magnetic flux stepwise in response to each output voltage pulse
of the SQUID sensor 21a. On the other hand, the other, non-selected SQUID sensors
such as the SQUID sensor 21n also produce the output pulses as long as there is a
interlinking unknown magnetic flux. However, the output pulses of these non-selected
SQUID sensors are blocked at the control gates such as the gate 23a and prohibited
from arriving at the corresponding feedback circuits such as the feedback circuit
22n. Thereby, there are no output pulses supplied from the non-selected channels to
the node 27a and thus to the processing and display unit 28. Only the output pulse
from the selected channel is allowed to arrive at the unit 28. Further, the feedback
circuits cooperating with the non-selected SQUID sensors are deprived of incoming
pulses and thus, the feedback magnetic field that counteracts the unknown magnetic
flux is unchanged during the interval when the SQUID sensor is not selected. Because
of this, the state of the SQUID magnetometers in the channels that are not selected
does not change during this non-selection interval and the SQUID magnetometers resume
the previous operation whenever selected in the next time.
[0024] It should be noted that the number of selection control lines 51a - 51m can be substantially
smaller than the number of channels, as the selection circuit 30 produces the control
signals as a combination of the selection signals. Thereby, the penetration of heat
into the low temperature vessel 100 through the selection control lines does not cause
a serious problem. This point will be examined later in relation to the construction
of the selection circuit 30.
[0025] FIG.4 shows in detail the construction of the SQUID sensor 21a and the cooperating
feedback circuit 22a, together with the construction of the control gate 23a.
[0026] Referring to FIG.4, the SQUID sensor 21a comprises a closed superconducting detection
loop 33 including therein superconducting detection coils 31a and 31b for interlinking
with the unknown magnetic flux, and another superconducting coupling coil 32 for magnetic
coupling with a SQUID interferometer 34. The SQUID interferometer comprises a superconducting
coupling coil 35 coupled magnetically to the superconducting coupling coil 32 and
a pair of Josephson junctions J1 and J2 that shunt both ends of the coil 35 to a superconducting
ground plane. Thereby, there is formed a closed loop forming the SQUID interferometer
34 by the coil 35, the Josephson junction J1, the ground plane, and the Josephson
junction J2. Further, the SQUID interferometer 34 is supplied with an a.c. drive current
from an a.c. voltage source 36 at a node connecting the Josephson junction J1 and
the superconducting coil 35.
[0027] In operation, the Josephson junctions J1 and J2 are supplied with the a.c. drive
current from the a.c. voltage source 36 as described previously. At the beginning,
the Josephson junctions J1 and J2 are in a zero-voltage state characterized by zero-resistance.
The magnitude of this a.c. drive current is set slightly smaller than a threshold
level above which the Josephson junctions J1 and J2 causes a transition from the zero-voltage
state to a finite voltage state characterized by a finite resistance.
[0028] When there is an unknown magnetic flux interlinking with the detection coils 31a
and 31b of the detection loop 33, an induction current flows through the loop 33.
This induction current in turn induces a second induction current in the SQUID interferometer
loop 34. Thereby, the amount of current flowing through the loop 34 exceeds the threshold
level of the zero-voltage state-to-finite voltage state transition of the Josephson
junctions J1 and J2 in response to the peak level of the a.c. drive current. Thus,
the Josephson junctions J1 and J2 experience the transition to the finite voltage
state and the SQUID sensor 21a produces a train of pulses in response to the peak
level of the a.c. drive current as long as the unknown magnetic flux interlinking
with the detection loop 33.
[0029] This output pulse of the SQUID sensor 21a is then supplied to the control gate 23a,
and from there, supplied further to the processing and display unit 28 on the one
hand and to the feedback circuit 22a on the other hand. As can be seen in FIG.4, the
control gate 23a comprises a Josephson OR gate 45 supplied with the control signal
CONTROL1 and latching the same for a period of high level state of the signal CONTROL1,
another, a.c. biased Josephson OR gate 46 supplied with the output voltage pulse of
the SQUID sensor 21a and latching the same during the active period of the a.c. biasing,
and a Josephson AND gate 44 that produces a logic product of the output of the OR
gate 45 and the output of the OR gate 46. In other words, the output voltage pulse
of the SQUID sensor 21a is supplied to the feedback circuit 22a and the processing
and display unit 28 only when the logic level of the CONTROL1 is high.
[0030] It should be noted that the Josephson OR gate 45 is enabled by the control signal
CONTROL1 given thereto as a bias separately to the input control signal CONTROL1,
and resetted in response to the low level thereof. Further, the Josephson OR gate
46 is enabled by the a.c. drive current given thereto from the a.c. voltage source
36 and latches the output pulse supplied thereto in synchronization with the a.c.
drive current. The operation of these Josephson OR gates will be described later with
reference to FIG.8A.
[0031] The feedback circuit 22a, on the other hand, is supplied with the output voltage
pulse from the control gate 23a via a superconducting coil 39. This superconducting
coil 39 is connected on the one hand to a SQUID interferometer comprising a superconducting
coil 38 coupled magnetically to the coil 39 and Josephson junctions J3 and J4 that
shunt both ends of the coil 38 to the superconducting ground plane, and on the other
hand to a first end of another superconducting coil 41. The second end of the coil
41 is connected to the ground plane. More specifically, the superconducting coil 39
is connected to a node where the Josephson junction J3 and the superconducting coil
38 are connected with each other, and the Josephson junction J3 causes a momentary
transition to the voltage state in response to the leading edge of the output pulse
of the SQUID sensor 21a and returns to the original zero-voltage state immediately.
In response to this transition of the Josephson junction J3, a magnetic flux associated
with the current of the output voltage pulse enters into the SQUID interferometer
loop 37 and trapped therein as a flux quantum in response to the returning of the
Josephson junction J1 to the zero-voltage state.
[0032] In response to the falling edge of the output voltage pulse, on the other hand, the
Josephson junction J4 causes a momentary transition to the finite voltage state and
returns immediately to the zero-voltage state. Upon transition to the finite voltage
state, the trapped flux quantum is transferred from the loop 37 to the superconducting
coil 41. Thereby, an induction current flows through the coil 41 and the Josephson
junction J4 returns to the zero-voltage state. After this, the induction current flows
through the superconducting coil 41 as a persisting feedback current and induces a
magnetic flux in the coil 41 as a stored magnetic flux. The magnitude of this stored
magnetic flux changes stepwise in response to each output voltage pulse of the SQUID
sensor 21a because of the quantization of the magnetic flux in the SQUID interferometer
loops 37 and 41. The coil 41 is coupled magnetically to the coil 32 via a feedback
loop 43 that schematically represents the magnetic coupling between the coil 41 and
the superconducting detection loop 33 and the magnetic flux is thus fed back to the
detection loop 33. The magnetic flux thus fed back counteracts against the unknown
magnetic flux and reduce the net intensity of the magnetic flux that is detected by
the detection loop 33. Therefore, the magnitude of the detected magnetic flux is decreased
stepwise in response to each output pulse of the SQUID sensor 21a until the unknown
magnetic flux is totally canceled out. By counting the number of the output pulses
thus produced, one can determine the intensity of the magnetic field. On the other
hand, the direction or polarity of the magnetic field is detected based upon the polarity
of the output voltage pulses.
[0033] As already noted, the supplying of the output voltage pulses to the feedback circuit
22a is controlled by the control gate 23a in response to the control signal CONTROL1.
Thus, when the control gate 23a is in the inactivated state and the passage of the
output voltage pulses to the feedback circuit 22a is blocked, the output pulses are
also prevented from reaching the processing and display unit 28 in spite of the fact
that the SQUID sensor 21a continues to produce the output pulses. Thus, during the
non-selected period, the unit 28 does not count up the output voltage pulses produced
by the SQUID sensors of the non-selected channels. Further, when the channel 21a is
not selected, the magnetic flux stored in the superconducting coil 41 remains unchanged.
This means that the state of the SQUID magnetometer does not change during the non-selected
interval and that the SQUID magnetometer of each channel resumes its operation whenever
reselected by the control signal.
[0034] FIGS.5A - 5D show the operational principle of the selection circuit 30. The selection
circuit 30 comprises a number of circuit parts Q1 - Qn each connected parallel to
the selection control lines 51a - 51m for receiving the selection signals therefrom.
[0035] Referring to FIG.5A showing the first part Q1 of the selection circuit 30, the circuit
part Q1 is supplied with binary input selection signals A1, A2, . . . , Am, from the
selection control lines 51a - 51m and produces a logic product A1 ∩ A2 ∩ . . . ∩ Am
addressing the first channel as the control signal CONTROL1.
[0036] Similarly, the second part Q2 of the selection circuit is supplied with the input
selection signals /A1, A2, . . . , Am, via the selection control lines and produces
a control signal CONTROL2 as a logic product /A1 ∩ A2 ∩ . . . ∩ Am addressing the
second channel as shown in FIG.5B. Similarly, control signals CONTROL3 - CONTROLn
are produced as shown in FIGS.5C and 5D.
[0037] Here, it should be noted that the number of the control signals, CONTROL1 - CONTROLn,
is given by the combination of the logic state of the m selection signals A1 - Am.
In other words, the number of the control signals each corresponding to a channel
is given as 2
m that is much larger than the number m. In other words, the number of the selection
control lines 51a - 51m used in the present construction can be much smaller than
the number of the channels in the low temperature vessel 100. Thereby, the penetration
of heat into the liquid helium in the vessel 100 through the selection control line
is minimized. For example, only 8 such selection control lines are sufficient for
addressing the 256 channels in the low temperature vessel 100. Compare this with the
conventional case where 256 lines have been used for the connection between the channels
in the vessel 100 and the control and display unit. Even when another 8 lines 52a
- 52m are provided in connection between the selection circuit 30 and the processing/display
unit 28 in correspondence to the lines 51a - 51m as in the case of the following example,
such an increase does not cause any serious problem with regard to the penetration
of heat through the conductor.
[0038] FIG.6 shows the detailed construction of the circuit part Q1 of FIG.5A.
[0039] Referring to FIG.6, there are provided a number of Josephson OR gates 61, 62, 63,
64, . . . coupled magnetically to the selection control lines. For example, the lines
51a and 52a connected in series and forming an inductance therebetween are coupled
to the gate 61. In practice, the lines 51a and 52a may be a single superconducting
strip turned over in correspondence to the gate 61 where the coupling inductance is
formed. Similarly, the lines 51b and 52b are coupled magnetically to a Josephson OR
gate 62, the lines 51c and 52c are coupled magnetically to a Josephson OR gate 63,
the lines 51d and 52d are coupled magnetically to a Josephson OR gate 64, and the
like. Further, the OR gates are driven by a bias current φ given by the unit 28, and
latches the selection control signals A1 - A4 thus supplied thereto during the active
period thereof. The bias current φ resets periodically to reset the Josephson OR gate
at each clock.
[0040] The Josephson OR gates 61 and 62 are connected to a Josephson AND gate 71 to form
a logic AND gate AND1 that produces an ordinary logic product of the input selection
signals A1 and A2 respectively supplied via the line pair 51a and 52a and the line
pair 51b and 52b. Similarly, the Josephson OR gates 63 and 64 are connected to a Josephson
AND gate 72 to form a logic AND gate AND2 that produces an ordinary logic product
of the input selection signals A3 and A4. The AND1 gate and AND2 gate are connected
to a next stage logic product gate AND11 that comprises a Josephson OR gate 65 receiving
the output from the AND1, a Josephson OR 66 receiving the output from the AND2, and
a Josephson AND gate 73 receiving the outputs of the Josephson OR gates 65 and 66.
In the circuit part Q1, such an arrangement of the Josephson OR and AND gates to form
the logic AND gate is repeated for other selection signals A5 - Am, and these logic
AND gates are arranged into a number of stages. Thereby, there is a last stage gate
ANDz that produces the logic product of all the selection signals A1, A2, . . . ,
Am. The same construction can be applicable to the other circuit parts Q2 - Qn. It
should be noted that, in the case of the Josephson logic circuits, the input logic
data is given in the form of true data and complementary data. Thus, the logic inversion
of the data such as /A1, . . . is always available. Of course, one may replace the
Josephson OR gate that receives the inverted selection signal by a Josephson timed
inverter whose construction will be described later.
[0041] The foregoing construction of magnetic coupling is preferable as the connection of
the selection control lines 51a - 51m, 52a - 52m is achieved by the serial fan-out
which reduces the number of fan-outs. For example, the selection control line 51a
may be used in common by the Josephson OR gates in the circuit parts Q1 - Qn. Thereby,
the designing of the connection of the selection control lines is simplified.
[0042] FIG.7 shows an alternative construction of the circuit part Q1, wherein the logic
inversion of the selection signals /A1, /A2, . . . , /Am are supplied to a Josephson
OR gate 94 via respective resistors 93a - 93m. The Josephson OR gate in turn is operated
in response to the first phase signal φ1 of the three-phase bias signals φ1, φ2 and
φ3 or of the two-phase bias signals φ1 and φ2, and latches the logic sum of the supplied
signals during the positive interval of the clock φ1. The sum held at the Josephson
OR gate 94 is then transferred to a timed inverted 97 that is driven in response to
the second phase clock φ2, and the timed inverter 97 outputs the logic inversion of
the logic sum of the input signals /A1 - /Am. Thereby, a logic product A1 ∩ A2 ∩ .
. . ∩ Am is obtained at the output of the timed inverter 97 as a result of the well
known logic rule. When using this circuit for the circuit part other than the part
Q1, the input signal or signals are suitably inverted by providing another timed inverter
in the input side. The modification for this is obvious and further description thereof
will be omitted. Usually, the true logic data and complementary logic data are available
in the case of the Josephson logic circuits as already described.
[0043] FIGS.8A - 8C are circuit diagrams of the Josephson OR gate, Josephson AND gate and
the Josephson timed inverter used in the previous circuits, wherein these diagrams
show a Josephson logic gates described previously by Fujimaki et al., "Josephson Modified
Variable Threshold Logic Gates for Use in Ultra-High-Speed LSI," IEEE Transactions
on Electron Devices Vol.36, No.2, February 1989. In these circuits, it should be noted
that a known construction of direct coupling is employed instead of the magnetic coupling
construction described with reference to the OR gates 61 - 64.
[0044] The OR gate of FIG.8A forms an asymmetric SQUID interferometer and includes therein
Josephson junctions J1 and J2, wherein the Josephson junction J1 has a critical current
pIm while the Josephson junction J2 has a critical current qIm. Here, there holds
a relationship p + q =1. Further, there is included an inductance L that is divided
into a left branch having an inductance qL (referred to hereinafter as "inductance
qL") and a right branch having an inductance pL (referred to hereinafter as "inductance
pL"), wherein the branch qL has an end connected to the ground via the Josephson junction
J1, and the branch pL has an end connected to the ground via the Josephson junction
J2. The other end of the branch qL and the other end of the branch pL are connected
each other at a central node C, to which the bias is supplied as a bias current Ig.
Further, there are provided an inductance Lx to establish a magnetic coupling with
the branches qL and pL via a mutual inductance M. The inductance Lx has an end connected
to one or more input terminals for receiving an input current Ic and another end connected
via a third Josephson junction J3 to the inductance qL at the end that is connected
to the ground via the Josephson junction J1.
[0045] In operation, the Josephson junction J1 - J3 are all in the zero voltage state in
the initial state wherein the level of the bias is set at zero. Thereby, the bias
current Ig flows to the ground directly with increased level of the bias and there
appears a low or zero-voltage output at an output terminal OUT connected to the node
C. The Josephson junctions J1 - J3 remain in the turned on state as long as there
is no input current Ic even when the bias has turned to the high level state.
[0046] When the current flowing through the Josephson junctions J1 and J2 has exceeded a
predetermined threshold as a result of increase in the input current Ic, on the other
hand, the Josephson junctions J1 and J2 cause a transition to the turned-off state.
Thereby, the bias current Ig starts to flow through the Josephson junction J3 to the
ground, after flowing through a resistor Ri, and in response to this, the Josephson
junction J3 is turned off. As a result, a high output is obtained at the output terminal.
Obviously, the transition of the state of the output is caused in response to the
sum of the input current at the input terminal IN, and thus, the circuit of FIG.5A
operates as a logic sum or OR-circuit. More detailed analysis of the circuit of FIG.5A
can be found in the foregoing reference by Fujimaki et al. In the circuit of FIG.6,
the input signals are given by the magnetic coupling of the selection control lines
with the inductance Lx.
[0047] FIG.8B shows the construction of the Josephson AND gate. Referring to FIG.8B, the
AND gate comprises a node D where the input signals are merged via respective resistances
Ra and Rb, and a Josephson junction Ja that shunts the node D. The Josephson junction
Ja is designed to have a threshold current of transition from the zero-voltage state
to the finite voltage state such that the transition occurs only when there are input
currents at both input terminals IN. Thereby, the circuit produces a logic product
of the input logic signals. More complete description of this circuit can be found
in the foregoing Fujimaki reference.
[0048] FIG.8C shows the timed inverter used in the preceding circuits. The timed inverter
comprises a Josephson OR gate driven by the clock current Ig in response to the signal
CLOCK that is supplied to the OR gate via a resistor Rs and resetted periodically
by the low level state of the clock. Further, the bias is voltage-divided by resistors
R1 and R2 and supplied to the OR gate via a Josephson junction J3 from a node F that
is formed at a junction between the resistor R1 and the resistor R2. Further, an input
signal is supplied to the OR gate via the node F. For this purpose, an input terminal
IN is connected to the node F via a resistor Rin'.
[0049] In operation, when the current flowing form the node F to the OR gate is below a
critical current level Ic in response to the no-input current state at the input terminal
IN, the current supplied to the OR gate in response to the clock signal maintains
the output of the OR gate at a high level state. On the other hand, when there is
an input current at the input terminal IN, the current supplied from the node F to
the OR gate exceeds the critical current Ic and the Josephson junction J3 is turned
off in response thereto. Thereby, the input current to the OR gate disappears and
the output of the OR gate, obtained at a node E between the OR gate and the resistor
Rs, changes to the low level state. Thus, an inversion of the input logic signal is
obtained at an output terminal OUT connected to the node E.
[0050] Next, a second embodiment of the present invention will be described with reference
to FIG.9. It should be noted that this drawing shows only one SQUID magnetometer or
channel magnetometer used in the multi-channel SQUID magnetometer similar to the case
of FIG.4. In FIG.9, those parts that correspond to the parts described previously
with reference to FIG.4 are given identical reference numerals and the description
thereof will be omitted.
[0051] Referring to the drawing, the channel magnetometer uses a so-called d.c. SQUID sensor
81 coupled magnetically to the superconducting detection loop 33 and a SQUID comparator
86. The d.c. SQUID sensor 81 comprises a superconducting coil 35 coupled magnetically
to the superconducting coil 32 of the loop 33, and a pair of Josephson junctions J1
and J2 that shunt the ends of the coil 35 to the superconducting ground plane. Thereby,
there is formed a SQUID interferometer 34 by the coil 35, Josephson junctions J1 and
J2, and the ground plane. Further, a d.c. drive current is supplied from a d.c. voltage
source 84 to the Josephson junctions J1 and J2 via a midpoint in the coil 35.
[0052] In operation, when there is an unknown magnetic flux interlinking the coils 31a and
31b of the detection loop 33, the induction current in the detection loop 33 induces
an induction current in the SQUID interferometer loop 34. In the loop 34, the Josephson
junctions J1 and J2 are biased by the d.c. voltage source to cause the transition
of the Josephson junctions to the voltage state at the threshold that in turn is changed
in response to the induction current. In response to this, a voltage proportional
to the magnitude of the induction current in the loop 34 is formed across the resistors
82 and 83 connected parallel to the Josephson junctions J1 and J2. This voltage is
then supplied to the SQUID comparator 86 of the next stage via a resistor 85.
[0053] The SQUID comparator 86 comprises a superconducting coil 89 connected to the resistor
85 for receiving the output voltage from the d.c. SQUID sensor 81, another superconducting
coil 88 coupled magnetically to the coil 89 and forming a SQUID interferometer 87
together with Josephson junctions J5 and J6 shunting the ends of the coil 88 to the
ground plane. The interferometer 87 is driven in response to an a.c. drive signal
supplied from an a.c. voltage source 90 and forms an output voltage pulse in response
to each cycle of the a.c. drive signal similarly to the case of the digital SQUID
sensor 21a of FIG.4 during the interval in which the output voltage is supplied from
the d.c. SQUID sensor 81.
[0054] The output voltage pulses thus produced are then supplied to a superconducting digital
feedback circuit 91 that comprises a superconducting up/down counter 91a and a superconducting
D/A converter 91b whose construction is disclosed in the United States Patent 4,947,118.
In the superconducting up/down counter, the number of the output pulses are counted
up together with their polarity, and from the total number of positive output pulses
are subtracted the total number of negative output pulses. The difference thus produced
indicates the magnitude of the feedback magnetic flux to be fed back to the detection
loop, and the output data are converted to an analog signal that represents the magnitude
of the feedback current used for producing the feedback magnetic flux.
[0055] This feedback magnetic flux thus produced in turn is coupled magnetically to the
superconducting detection loop 33 as schematically shown by a line 92 representing
the magnetic coupling, and there is induced a counteracting, feedback magnetic flux
in the loop 33. Similarly to the first embodiment, the magnitude of the feedback magnetic
flux is changed stepwise in response to each output pulse of the SQUID comparator
86 until the unknown magnetic flux is canceled out entirely. Similar to the first
embodiment, the measurement of the strength of the unknown magnetic field is achieved
by counting up the number of output voltage pulses thus produced and the detection
of the direction of the magnetic flux is achieved by detecting the polarity of the
output voltage pulses.
[0056] In constructing the multi-channel magnetometer, a number of circuits shown in FIG.9
are arranged parallel as already shown and described in relation to FIG.3. Thereby,
each channel is addressed by the selection circuit 30. As this part of the construction
is identical with the previous embodiment, the description thereof will be omitted.
[0057] FIG.10 shows a third embodiment, wherein the digital SQUID sensor 21a of FIG.4 is
combined with the superconducting digital feedback loop 91 of FIG.9. Of course, the
up/down counter and the D/A converter may be provided outside of the low temperature
vessel 100. However, this is not preferable as such a construction increases the number
of lines connecting the SQUID magnetometers in the vessel 100 to the circuits outside
of the vessel 100 and thus increases the penetration of heat into the liquid helium.
The same argument holds true also for the selection circuit 30. Thus, one may provide
the selection circuit 30 outside the low temperature vessel 100. However, such a construction
is not preferable because of the excessive penetration of heat and hence the consumption
of the liquid helium.
[0058] FIG.11 shows a fourth embodiment of the present invention. In this embodiment, a
Josephson up/down counter 150 is provided within the low temperature vessel 100 for
receiving the output voltage pulses via the output line 27. Further, there may be
another Josephson processor 151 also in the low temperature vessel 100 for processing
the output of the Josephson up/down counter 150. The processor 151 may perform various
data processing such as the Fourier transformation, identification of the source of
the unknown magnetic field, and the like. In this case, the unit 28 at the outside
of the low temperature vessel 100 receives only the processed output and may be simply
a display unit.
[0059] Further, the present invention is not limited to the embodiments described heretofore,
but various variations and modifications may be made without departing from the scope
of the invention as defined by the appended claims.
1. A multi-channel superconducting quantum interference magnetometer for measuring an
unknown magnetic field, comprising:
a cooling vessel (100) for holding a cooling medium;
a plurality of superconducting quantum interference magnetometer elements, one for
each channel, each magnetometer element including:
a SQUID sensor (21a-21n) including a superconducting detection loop (33) formed from
a closed loop of a superconducting body, for interlinking with the unknown magnetic
field; and a superconducting quantum interference device (SQUID) (34) coupled magnetically
to the superconducting detection loop for producing output voltage pulses in response
to the interlinking of the superconducting detection loop with the unknown magnetic
field, the SQUID sensors (21) being accommodated in the cooling vessel so as to be
cooled by the cooling medium;
feedback means (22a-22n) supplied with the output voltage pulses from the SQUID for
producing a magnetic flux that counteracts the unknown magnetic flux in the detection
loop due to the unknown magnetic field in response to each output voltage pulse; and
gate means (23a-23n) between the SQUID and the feedback means for controlling the
supplying of the output voltage pulses from the SQUID to the feedback means, the gate
means being supplied with a control signal and selectively passing the output voltage
pulses in response to a logic level of the control signal;
the multi-channel magnetometer further comprising selection means (30) to which selection
signals are applied for specifying a desired channel and which supplies the control
signal selectively to the gate means of the superconducting quantum interference magnetometer
element of the specified channel; and
connection lead means (27a, 27) connected to the SQUID of each channel via the corresponding
gate means for leading the output voltage pulse to a processing circuit; and being
characterised in that the feedback means (22a-n), the gate means (23a-n) and the
selection means (30) are all accommodated in the cooling vessel (100).
2. A multi-channel superconducting quantum interference magnetometer as claimed in claim
1, in which the selection means (30) comprises a plurality of logic circuits (Q1-Q256)
each supplied with the selection signals and producing a logic product of the selection
signals as the control signal.
3. A multi-channel quantum interference magnetometer as claimed in claim 2, in which
the selection signals (A1....Am) are supplied to the logic circuits (Q1-Q256) as non-inverted
and as inverted logic signals, the combination of the logic signals and their inversion
being different for each channel.
4. A multi-channel quantum interference magnetometer as claimed in claim 2 or 3, in which
each logic circuit (Qi) comprises a plurality of logic product gates (AND1, AND2...AND11...ANDz)
arranged in cascade to produce the logic product of the selection signals.
5. A multi-channel quantum interference magnetometer as claimed in any preceding claim,
in which the feedback means includes an up/down counter (91a) for receiving the output
pulses from the SQUID sensor for producing output data indicative of the number of
output pulses of a first polarity minus the number of output pulses of the second,
opposite polarity, and a digital-to-analog converter (91b) provided also in the cooling
vessel for receiving the output data of the up/down counter and converting them to
an analog signal.
6. A multi-channel quantum interference magnetometer as claimed in any of claims 1 to
4, in which the SQUID is driven by an a.c. bias.
7. A multi-channel superconducting quantum interference magnetometer for measuring an
unknown magnetic field, comprising:
a cooling vessel (100) for holding a cooling medium;
a plurality of superconducting quantum interference magnetometer elements, one for
each channel, each magnetometer element including:
a SQUID sensor comprising a superconducting detection loop (33) formed from a closed
loop of a superconducting body, for interlinking with the unknown magnetic field;
a first SQUID (81) driven by a d.c. drive current (84), coupled magnetically to the
superconducting detection loop and producing an output current generally proportional
to the unknown magnetic field; and a second SQUID (86) driven by an a.c. bias (90)
and coupled magnetically to the first SQUID for producing an output voltage pulse
in response to each cycle of the a.c. bias signal and in response to the output current
of the first SQUID, the SQUID sensors being accommodated in the cooling vessel so
as to be cooled by the cooling medium;
feedback means (91) supplied with the output voltage pulses from the second SQUID
for producing a magnetic flux that counteracts the unknown magnetic flux in the detection
loop due to the unknown magnetic field in response to each output voltage pulse; and
gate means (23a-23n) between the second SQUID and the feedback means for controlling
the supplying of the output voltage pulses from the second SQUID to the feedback means,
the gate means being supplied with a control signal and selectively passing the output
voltage pulses in response to a logic level of the control signal;
the multi-channel magnetometer further comprising selection means (30) to which selection
signals are applied for specifying a desired channel and which supplies the control
signal selectively to the gate means of the superconducting quantum interference magnetometer
element of the specified channel; and
connection lead means (27a, 27) connected to the second SQUID (86) of each channel
via the corresponding gate means for leading the output voltage pulse to a processing
circuit;
wherein the feedback means (91), the gate means (23a-n) and the selection means (30)
are all accommodated in the cooling vessel (100).
8. A multi-channel quantum interference magnetometer as claimed in any preceding claim,
in which the processing circuit is a Josephson processor (151) and is also accommodated
in the cooling vessel (100).
1. Ein supraleitendes Mehrkanal-Quanteninterferenz-Magnetometer zum Messen eines unbekannten
Magnetfeldes mit:
einem Kühlgefäß (100) zum Halten eines Kühlmediums;
einer Vielzahl supraleitender Quanteninterferenz-Magnetometerelemente, eines für jeden
Kanal, jedes Magnetometerelement enthaltend:
einen SQUID-Sensor (21a - 21n), der eine aus einer geschlossenen Schleife eines supraleitenden
Körpers gebildete supraleitende Detektionsschleife (33) zum Verketten mit dem unbekannten
Magnetfeld enthält; und eine mit der supraleitenden Detektionsschleife magnetisch
gekoppelte supraleitende Quanteninterferenzvorrichtung (SQUID) (34) zum Erzeugen von
Ausgangsspannungspulsen als Antwort auf das Verketten der supraleitenden Detektionsschleife
mit dem unbekannten Magnetfeld, welche SQUID-Sensoren (21) in dem Kühlgefäß untergebracht
sind, um durch das Kühlmedium gekühlt zu werden;
ein Rückkopplungsmittel (22a - 22n), das mit den Ausgangsspannungspulsen von dem SQUID
versorgt wird, zum Erzeugen eines Magnetflusses, der dem unbekannten Magnetfluß in
der Detektionsschleife infolge des unbekannten Magnetfeldes entgegenwirkt, als Antwort
auf jeden Ausgangsspannungspuls; und
ein Tormittel (23a - 23n) zwischen dem SQUID und dem Rückkopplungsmittel zum Steuern
des Lieferns der Ausgangsspannungspulse von dem SQUID an das Rückkopplungsmittel,
welches Tormittel mit einem Steuersignal versorgt wird und die Ausgangsspannungspulse
als Antwort auf einen logischen Pegel des Steuersignals selektiv durchläßt;
welches Mehrkanal-Magnetometer ferner ein Auswahlmittel (30) aufweist, an das Auswahlsignale
zum Spezifizieren eines gewünschten Kanals angelegt werden und welches das Steuersignal
selektiv an das Tormittel des supraleitenden Quanteninterferenz-Magnetometerelements
des spezifizierten Kanals liefert; und
ein Verbindungszuleitungsmittel (27a, 27), das mit dem SQUID jedes Kanals über das
entsprechende Tormittel verbunden ist, zum Liefern des Ausgangsspannungspulses an
eine Verarbeitungsschaltung; und
dadurch gekennzeichnet, daß das Rückkopplungsmittel (22a - n), das Tormittel (23a
- n) und das Auswahlmittel (30) alle in dem Kühlgefäß (100) untergebracht sind.
2. Ein supraleitendes Mehrkanal-Quanteninterferenz-Magnetometer nach Anspruch 1, in welchem
das Auswahlmittel (30) eine Vielzahl logischer Schaltungen (Q1 - Q256) aufweist, die
jeweils mit den Auswahlsignalen versorgt werden und ein logisches Produkt der Auswahlsignale
als das Steuersignal erzeugen.
3. Ein Mehrkanal-Quanteninterferenz-Magnetometer nach Anspruch 2, in welchem die Auswahlsignale
(A1 ... Am) an die logischen Schaltungen (Q1 - Q256) als nicht-invertierte und als
invertierte logische Signale geliefert werden, wobei die Kombination der logischen
Signale und ihrer Inversion für jeden Kanal verschieden ist.
4. Ein Mehrkanal-Quanteninterferenz-Magnetometer nach Anspruch 2 oder 3, in welchem jede
logische Schaltung (Qi) eine Vielzahl Logische-Produkt-Tore (UND1, UND2, ... UND11,
... UNDz) aufweist, die in Kaskade angeordnet sind, um das logische Produkt der Auswahlsignale
zu erzeugen.
5. Ein Mehrkanal-Quanteninterferenz-Magnetometer nach einem der vorhergehenden Ansprüche,
in welchem das Rückkopplungsmittel einen Aufwärts/Abwärtszähler (91a) zum Empfangen
der Ausgabepulse von dem SQUID-Sensor zum Erzeugen von Ausgabedaten enthält, die für
die Zahl von Ausgabepulsen einer ersten Polarität minus die Zahl von Ausgabepulsen
der zweiten entgegengesetzten Polarität kennzeichnend sind, und einen Digital-Analog-Wandler
(91b), der ebenfalls in dem Kühlgefäß vorgesehen ist, zum Empfangen der Ausgabedaten
des Aufwärts/Abwärtszählers und Umwandeln dieser in ein analoges Signal.
6. Ein Mehrkanal-Quanteninterferenz-Magnetometer nach einem der Ansprüche 1 bis 4, in
welchem der SQUID durch eine Wechselstromvorspannung angesteuert wird.
7. Ein supraleitendes Mehrkanal-Quanteninterferenz-Magnetometer zum Messen eines unbekannten
Magnetfeldes mit:
einem Kühlgefäß (100) zum Halten eines Kühlmediums;
einer Vielzahl supraleitender Quanteninterferenz-Magnetometerelemente, eines für jeden
Kanal, jedes Magnetometerelement enthaltend:
einen SQUID-Sensor mit einer aus einer geschlossenen Schleife eines supraleitenden
Körpers gebildeten supraleitenden Detektionsschleife (33) zum Verketten mit dem unbekannten
Magnetfeld; einem ersten SQUID (81), der durch einen Gleichstrom-Ansteuerstrom (84)
angesteuert wird, mit der supraleitenden Detektionsschleife magnetisch gekoppelt ist
und einen Ausgangsstrom erzeugt, der dem unbekannten Magnetfeld im allgemeinen proportional
ist; und einem zweiten SQUID (86), der durch eine Wechselstromvorspannung (90) angesteuert
wird und mit dem ersten SQUID magnetisch gekoppelt ist, zum Erzeugen eines Ausgangsspannungspulses
als Antwort auf jeden Zyklus des Wechselstrom-Vorspannungssignals und als Antwort
auf den Ausgangsstrom des ersten SQUID, welche SQUID-Sensoren in dem Kühlgefäß untergebracht
sind, um durch das Kühlmedium gekühlt zu werden;
ein Rückkopplungsmittel (91), das mit den Ausgangsspannungspulsen von dem zweiten
SQUID versorgt wird, zum Erzeugen eines Magnetflusses, der dem unbekannten Magnetfluß
in der Detektionsschleife infolge des unbekannten Magnetfeldes entgegenwirkt, als
Antwort auf jeden Ausgangsspannungspuls; und
ein Tormittel (23a - 23n) zwischen dem zweiten SQUID und dem Rückkopplungsmittel zum
Steuern des Lieferns der Ausgangsspannungspulse von dem zweiten SQUID an das Rückkopplungsmittel,
welches Tormittel mit einem Steuersignal versorgt wird und die Ausgangsspannungspulse
als Antwort auf einen logischen Pegel des Steuersignals selektiv durchläßt;
welches Mehrkanal-Magnetometer ferner ein Auswahlmittel (30) aufweist, an das Auswahlsignale
zum Spezifizieren eines gewünschten Kanals angelegt werden und welches das Steuersignal
selektiv an das Tormittel des supraleitenden Quanteninterferenz-Magnetometerelements
des spezifizierten Kanals liefert; und
ein Verbindungszuleitungsmittel (27a, 27), das mit dem zweiten SQUID (86) jedes Kanals
über das entsprechende Tormittel verbunden ist, zum Leiten des Ausgangsspannungspulses
zu einer Verarbeitungsschaltung;
worin das Rückkopplungsmittel (91), das Tormittel (23a - n) und das Auswahlmittel
(30) alle in dem Kühlgefäß (100) untergebracht sind.
8. Ein Mehrkanal-Quanteninterferenz-Magnetometer nach einem der vorhergehenden Ansprüche,
in welchem die Verarbeitungsschaltung ein Josephson-Prozessor (151) ist und ebenfalls
in dem Kühlgefäß (100) untergebracht ist.
1. Magnétomètre supraconducteur à interférence quantique multi-canaux pour mesurer un
champ magnétique inconnu, comprenant :
un récipient de refroidissement (100) pour maintenir un moyen de refroidissement ;
une pluralité d'éléments supraconducteurs de magnétomètre à interférence quantique,
un pour chaque canal, chaque élément de magnétomètre comprenant :
un capteur SQUID (21a à 21n) comprenant une boucle de détection supraconductrice (33)
formée à partir d'une boucle fermée d'un corps supraconducteur, pour interagir avec
le champ magnétique inconnu, et un dispositif supraconducteur d'interférence quantique
(SQUID) (34) couplé magnétiquement à la boucle de détection supraconductrice pour
produire des impulsions de tension de sortie en réponse à l'interaction de la boucle
de détection supraconductrice avec le champ magnétique inconnu, les capteurs SQUID
(21) étant logés dans le récipient de refroidissement afin d'être refroidis par le
moyen de refroidissement ;
un moyen de rétroaction (22a à 22n) recevant les impulsions de tension de sortie du
SQUID pour produire un flux magnétique qui s'oppose au flux magnétique inconnu dans
la boucle de détection due au champ magnétique inconnu en réponse à chaque impulsion
de tension de sortie ; et
un moyen de porte logique (23a à 23n) entre le SQUID et le moyen de rétroaction pour
commander la fourniture des impulsions de tension de sortie du SQUID au moyen de rétroaction,
le moyen de porte logique recevant un signal de commande et passant sélectivement
les impulsions de tension de sortie en réponse à un niveau logique du signal de commande
;
le magnétomètre multi-canaux comprenant en outre un moyen de sélection (30) auquel
des signaux de sélection sont appliqués pour spécifier un canal voulu et qui fournit
sélectivement le signal de commande au moyen de porte logique de l'élément de magnétomètre
supraconducteur à interférence quantique du canal spécifié ; et
un moyen de conducteur de raccordement (27a, 27) raccordé au SQUID de chaque canal
via le moyen de porte logique correspondant pour conduire l'impulsion de tension de
sortie à un circuit de traitement ; et étant
caractérisé en ce que le moyen de rétroaction (22a à 22n), le moyen de porte logique
(23a à 23n) et le moyen de sélection (30) sont tous logés dans le récipient de refroidissement
(100).
2. Magnétomètre supraconducteur à interférence quantique multi-canaux selon la revendication
1, dans lequel le moyen de sélection (30) comprend une pluralité de circuits logiques
(Q1 à Q256), chacun recevant les signaux de sélection et produisant un produit logique
des signaux de sélection comme signal de commande.
3. Magnétomètre à interférence quantique multi-canaux selon la revendication 2, dans
lequel les signaux de sélection (A1... Am) sont appliqués aux circuits logiques (Q1
à Q256) comme des signaux logiques non inversés et inversés, la combinaison des signaux
logiques et leur inversion étant différente pour chaque canal.
4. Magnétomètre à interférence quantique multi-canaux selon la revendication 2 ou 3,
dans lequel chaque circuit logique (Qi) comprend une pluralité de portes de produit
logique (AND1, AND2, ... AND11... ANDz) disposées en cascade pour produire le produit
logique des signaux de sélection.
5. Magnétomètre à interférence quantique multi-canaux selon l'une quelconque des revendications
précédentes, dans lequel le moyen de rétroaction comprend un compteur progressif/régressif
(91a) pour recevoir les impulsions de sortie du capteur SQUID pour produire les données
de sortie indicatrices du nombre d'impulsions de sortie d'une première polarité moins
le nombre d'impulsions de sortie de la seconde polarité opposée, et un convertisseur
numérique/analogique (91b) placé aussi dans le récipient de refroidissement pour recevoir
les données de sortie du compteur progressif/régressif et les convertir en signaux
analogiques.
6. Magnétomètre à interférence quantique multi-canaux selon l'une quelconque des revendications
1 à 4, dans lequel le SQUID est commandé par une polarisation alternative.
7. Magnétomètre supraconducteur à interférence quantique multi-canaux pour mesurer un
champ magnétique inconnu, comprenant :
un récipient de refroidissement (100) pour maintenir un moyen de refroidissement ;
une pluralité d'éléments de magnétomètre supraconducteur à interférence quantique,
un pour chaque canal, chaque élément de magnétomètre comprenant :
un capteur SQUID comprenant une boucle de détection supraconductrice (33) formée à
partir d'une boucle fermée d'un corps supraconducteur, pour interagir avec le champ
magnétique inconnu ; un premier SQUID (81) commandé par un courant de commande continu
(84), couplé magnétiquement à la boucle de détection supraconductrice et produisant
un courant de sortie généralement proportionnel au champ magnétique inconnu ; et un
second SQUID (86) commandé par une polarisation alternative (90) et couplé magnétiquement
au premier SQUID pour produire une impulsion de tension de sortie en réponse à chaque
cycle du signal de polarisation alternatif et en réponse au courant de sortie du premier
SQUID, les capteurs SQUID étant logés dans le récipient de refroidissement afin d'être
refroidis par le moyen de refroidissement ;
un moyen de rétroaction (91) recevant les impulsions de tension de sortie du second
SQUID pour produire un flux magnétique qui s'oppose au flux magnétique inconnu dans
la boucle de détection due au champ magnétique inconnu en réponse à chaque impulsion
de tension de sortie ; et
un moyen de porte logique (23a à 23n) entre le second SQUID et le moyen de rétroaction
pour commander la fourniture des impulsions de tension de sortie du second SQUID au
moyen de rétroaction, le moyen de porte logique recevant un signal de commande et
passant sélectivement les impulsions de tension de sortie en réponse à un niveau logique
du signal de commande ;
le magnétomètre multi-canaux comprenant en outre un moyen de sélection (30) auquel
des signaux de sélection sont appliqués pour spécifier un canal voulu et qui fournit
sélectivement le signal de commande au moyen de porte logique de l'élément de magnétomètre
supraconducteur à interférence quantique du canal spécifié ; et
un moyen de conducteur de raccordement (27a, 27) raccordé au second SQUID (86) de
chaque canal via le moyen de porte logique correspondant pour conduire l'impulsion
de tension de sortie à un circuit de traitement ;
où le moyen de rétroaction (91), le moyen de porte logique (23a à 23n) et le moyen
de sélection (30) sont tous logés dans le récipient de refroidissement (100).
8. Magnétomètre à interférence quantique multi-canaux selon l'une quelconque des revendications
précédentes, dans lequel le circuit de traitement est un processeur Josephson (151)
et est aussi logé dans le récipient de refroidissement (100).